Patents by Inventor Scott Alan Gold

Scott Alan Gold has filed for patents to protect the following inventions. This listing includes patent applications that are pending as well as patents that have already been granted by the United States Patent and Trademark Office (USPTO).

  • Patent number: 10352750
    Abstract: A method of characterizing gas flow within a housing includes: positioning one or more gas flow sensors in the housing; introducing a gas flow into the housing; using the one or more gas flow sensors to generate two or more gas flow measurements at spaced-apart locations within the housing; and recording the two or more measurements to create a gas flow map.
    Type: Grant
    Filed: September 27, 2018
    Date of Patent: July 16, 2019
    Assignee: General Electric Company
    Inventors: Scott Alan Gold, James Harding Shealy, Lucas Christian Jones
  • Patent number: 10232439
    Abstract: A method of controlling an additive manufacturing process in which a directed energy source is used to selectively fuse powdered material to form a workpiece, in the presence of a gas flow, the method including: using at least one gas flow sensor to generate at least one gas flow measurement; and controlling at least one aspect of the additive manufacturing process in response to the at least one gas flow measurement.
    Type: Grant
    Filed: November 20, 2015
    Date of Patent: March 19, 2019
    Assignee: General Electric Company
    Inventors: Scott Alan Gold, James Harding Shealy, Jonathan William Ortner
  • Patent number: 10221488
    Abstract: A method of reducing surface roughness in an internal passage of a workpiece includes contacting the internal passage with a corrosive working fluid comprising water at or near supercritical conditions.
    Type: Grant
    Filed: September 18, 2015
    Date of Patent: March 5, 2019
    Assignee: General Electric Company
    Inventor: Scott Alan Gold
  • Publication number: 20190025109
    Abstract: A method of characterizing gas flow within a housing includes: positioning one or more gas flow sensors in the housing; introducing a gas flow into the housing; using the one or more gas flow sensors to generate two or more gas flow measurements at spaced-apart locations within the housing; and recording the two or more measurements to create a gas flow map.
    Type: Application
    Filed: September 27, 2018
    Publication date: January 24, 2019
    Inventors: Scott Alan Gold, James Harding Shealy, Lucas Christian Jones
  • Publication number: 20180369912
    Abstract: The present disclosure generally relates to methods and apparatuses for chemical vapor deposition (CVD) during additive manufacturing (AM) processes. Such methods and apparatuses can be used to embed chemical signatures into manufactured objects, and such embedded chemical signatures may find use in anti-counterfeiting operations and in manufacture of objects with multiple materials.
    Type: Application
    Filed: June 23, 2017
    Publication date: December 27, 2018
    Inventor: Scott Alan GOLD
  • Publication number: 20180369918
    Abstract: The present disclosure generally relates to methods and apparatuses for laser shock peening during additive manufacturing (AM) processes. Such methods and apparatuses can be used to embed microstructural and/or physical signatures into manufactured objects, and such embedded chemical signatures may find use in anti-counterfeiting operations and in manufacture of objects with multiple materials.
    Type: Application
    Filed: June 23, 2017
    Publication date: December 27, 2018
    Inventor: Scott Alan GOLD
  • Publication number: 20180370861
    Abstract: A ceramic resin is provided, along with its methods of formation and use. The ceramic resin may include a crosslinkable precursor, a photoinitiator, ceramic particles, and pore forming particles. The ceramic resin may be utilized to form a ceramic casting element, such as via a method that includes forming a layer of the ceramic resin; applying light onto the ceramic resin such that the photoinitiator initiates polymerization of the crosslinkable precursor to form a crosslinked polymeric matrix setting the ceramic particles and the pore forming particles; and thereafter, heating the crosslinked polymeric matrix to a first temperature to burn out the pore forming particles.
    Type: Application
    Filed: June 27, 2017
    Publication date: December 27, 2018
    Inventor: Scott Alan Gold
  • Publication number: 20180370213
    Abstract: The present disclosure generally relates to methods and apparatuses for secondary material deposition and insert deposition during additive manufacturing (AM) processes. Such methods and apparatuses can be used to embed chemical signatures into manufactured objects, and such embedded chemical signatures may find use in anti-counterfeiting operations and in manufacture of objects with multiple materials.
    Type: Application
    Filed: June 23, 2017
    Publication date: December 27, 2018
    Inventors: Scott Alan GOLD, Christian STEVENSON
  • Patent number: 10113894
    Abstract: A method of characterizing gas flow within a housing includes: positioning one or more gas flow sensors in the housing; introducing a gas flow into the housing; using the one or more gas flow sensors to generate two or more gas flow measurements at spaced-apart locations within the housing; and recording the two or more measurements to create a gas flow map.
    Type: Grant
    Filed: May 7, 2018
    Date of Patent: October 30, 2018
    Assignee: General Electric Company
    Inventors: Scott Alan Gold, James Harding Shealy, Lucas Christian Jones
  • Publication number: 20180292331
    Abstract: A system and method for authenticating an additively manufactured component is provided. The method includes locating an identifying region of the component that includes localized density variations that define a component identifier. The method further includes interrogating the identifying region of the component using a scanning device such as an x-ray computed tomography device to obtain the component identifier. The method further includes obtaining a reference identifier from a database, comparing the component identifier to the reference identifier, and determining that the component is authentic if the component identifier matches the reference identifier.
    Type: Application
    Filed: April 5, 2017
    Publication date: October 11, 2018
    Inventors: Scott Alan Gold, Thomas Graham Spears, David Henry Abbott
  • Publication number: 20180293592
    Abstract: A system and method for additively manufacturing a component including features for part identification are provided. The method includes selectively depositing a contrast agent on a cross sectional layer to define a component identifier of the component and directing energy from an energy source onto the contrast agent to fuse the contrast agent and the cross sectional layer. The contrast agent may be an x-ray emission contrast agent that is read using an x-ray emission spectroscopy method, an infrared contrast agent that is read using an infrared camera or an infrared scanner, or a radioactive contrast agent that is read using a gamma ray spectrometer.
    Type: Application
    Filed: April 5, 2017
    Publication date: October 11, 2018
    Inventors: Scott Alan Gold, Thomas Graham Spears
  • Publication number: 20180293476
    Abstract: A component incorporating a 3-D identification code includes: a component body having an interior bounded by an exterior surface; and an identification code formed as a part of at least one of the interior and the exterior surface, the identification code including a plurality of cells arranged in a three-dimensional space, wherein each of the cells is configured to encode more than two possible values.
    Type: Application
    Filed: April 5, 2017
    Publication date: October 11, 2018
    Inventor: Scott Alan Gold
  • Publication number: 20180290396
    Abstract: A method for additively manufacturing a component is provided. The method includes additively manufacturing an identifying region of the component including localized density variations that define a component identifier of the component. The localized density variations may be formed using two materials having different densities, by manipulating an energy source to underexpose or overexpose a layer of powder, or by laser shock peening the component during the additive manufacturing process. This method generates a three-dimensional unique component identifier that may be invisible to the naked eye and detectable only through interrogation by a scanning device, such as an x-ray computed tomography device. The component identifier may be stored in a database as a reference identifier and may be used for authenticating components.
    Type: Application
    Filed: April 5, 2017
    Publication date: October 11, 2018
    Inventors: Scott Alan Gold, Thomas Graham Spears, David Henry Abbott
  • Publication number: 20180292355
    Abstract: A system and method for manufacturing and authenticating an additively manufactured component are provided. The method includes forming a surface around a cross sectional layer and introducing localized surface variations to the surface. The localized surface variations are configured for generating a unique acoustic wave response that defines a component identifier of the component. The method further includes exciting the surface of the component at an excitation region using an excitation source and interrogating the surface at an excitation region of the component at an interrogation region using a vibration sensor. The acoustic wave response may be compared to a stored component identifier in a database for authenticating components.
    Type: Application
    Filed: April 5, 2017
    Publication date: October 11, 2018
    Inventor: Scott Alan Gold
  • Publication number: 20180293372
    Abstract: A system and method for authenticating an additively manufactured component are provided. The method includes locating an identifying region on the component which may be positioned at a predetermined location relative to an identifiable datum feature. The identifying region may be scanned to determine a component identifier of the component. A reference identifier may be obtained from a database and compared to the component identifier to determine whether the component is authentic.
    Type: Application
    Filed: April 5, 2017
    Publication date: October 11, 2018
    Inventors: Scott Alan Gold, Thomas Graham Spears
  • Publication number: 20180292337
    Abstract: A system and method for manufacturing and authenticating a component is provided. The method includes forming a component having an identifying region that contains two or more materials having different conductivities such that the identifying region generates an eddy current response signature that defines a component identifier of the component. The method further includes interrogating the identifying region of the surface with an eddy current probe to determine the component identifier. The component identifier may be stored in a database as a reference identifier and may be used for authenticating components.
    Type: Application
    Filed: April 5, 2017
    Publication date: October 11, 2018
    Inventors: Scott Alan Gold, Justin Mamrak
  • Publication number: 20180290395
    Abstract: An additively manufactured component and a method for manufacturing the same are provided. The additively manufactured component includes a cross sectional layer having a surface surrounding the cross sectional layer. The cross sectional layer is formed by moving a focal point of an energy source over a bed of additive material. A surface irregularity is formed on the surface by manipulating the energy level of the energy source. The surface may include a datum feature positioned at a predetermined location relative to the surface irregularity and the surface irregularity may be greater than a surface roughness of the surface but less than one millimeter.
    Type: Application
    Filed: April 5, 2017
    Publication date: October 11, 2018
    Inventors: Scott Alan Gold, Thomas Graham Spears
  • Patent number: 10073060
    Abstract: A method for inspecting an additive manufacturing process in which a directed energy source is used to create a weld pool at an exposed build surface of a mass of powdered material, and selectively fuse the powdered material to form a workpiece. The inspection method includes: using a noncontact method to generate an acoustic wave in the build surface; using a noncontact method to measure displacement of the build surface in response to the acoustic wave; and determining at least one sub-surface material property of the workpiece by analyzing the displacement of the build surface.
    Type: Grant
    Filed: November 19, 2015
    Date of Patent: September 11, 2018
    Assignee: General Electric Company
    Inventors: MacKenzie Ryan Redding, Scott Alan Gold, Thomas Graham Spears
  • Publication number: 20180252568
    Abstract: A method of characterizing gas flow within a housing includes: positioning one or more gas flow sensors in the housing; introducing a gas flow into the housing; using the one or more gas flow sensors to generate two or more gas flow measurements at spaced-apart locations within the housing; and recording the two or more measurements to create a gas flow map.
    Type: Application
    Filed: May 7, 2018
    Publication date: September 6, 2018
    Inventors: Scott Alan Gold, James Harding Shealy, Lucas Christian Jones
  • Patent number: 9989495
    Abstract: A method of monitoring an additive manufacturing process in which a directed energy source is used to create a weld pool at an exposed build surface of a mass of powdered material, and selectively fuse the powdered material to form a workpiece, the method including measuring acoustic energy generated by the weld pool to generate a measured acoustic profile.
    Type: Grant
    Filed: November 19, 2015
    Date of Patent: June 5, 2018
    Assignee: General Electric Company
    Inventors: Scott Alan Gold, Thomas Graham Spears